Estimating Defocus Blur via Rank of Local Patches

Guodong Xu, Yuhui Quan, Hui Ji
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引用次数: 38

Abstract

This paper addresses the problem of defocus map estimation from a single image. We present a fast yet effective approach to estimate the spatially varying amounts of defocus blur at edge locations, which is based on the maximum ranks of the corresponding local patches with different orientations in gradient domain. Such an approach is motivated by the theoretical analysis which reveals the connection between the rank of a local patch blurred by a defocus-blur kernel and the blur amount by the kernel. After the amounts of defocus blur at edge locations are obtained, a complete defocus map is generated by a standard propagation procedure. The proposed method is extensively evaluated on real image datasets, and the experimental results show its superior performance to existing approaches.
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通过局部补丁的秩估计散焦模糊
本文解决了单幅图像的离焦图估计问题。我们提出了一种快速有效的方法来估计边缘位置的空间变化的离焦模糊量,该方法基于梯度域中不同方向的相应局部斑块的最大秩。理论分析揭示了散焦模糊核模糊后局部斑块的秩与模糊量之间的关系。在获得边缘位置的散焦模糊量后,通过标准的传播程序生成完整的散焦图。该方法在真实图像数据集上进行了广泛的评估,实验结果表明其优于现有方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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